Time-Series Data Augmentation for Improving Multi-Class Classification Performance
Woo-Hyeon Kim,
Geon-Woo Kim,
Jaeyoon Ahn
et al.
Abstract:This paper proposes a new approach to classify and evaluate defects in concrete structures automatically. To overcome the limitations of defect detection methods that traditionally relied on expert visual observation, the reflection signal of electromagnetic pulses is extracted as time-series data and used to analyze the propagation characteristics of each defect. This study uses deep learning models to analyze these time-series data and classify defects. Since anomaly detection data has more normal data than … Show more
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